Field Of The Invention
[0001] The present invention relates to hand held sprayers for spraying various aerosol
products, more particularly to dual receptacle sprayers having a first receptacle
for containing the product to be dispensed and a second receptacle for containing
a pressurized propellant to dispense the product.
Background of The Invention
[0002] Dual receptacle sprayers of various types are well known, including sprayers having
side by side receptacles, sprayers having piggyback receptacles wherein a propellant
receptacle is positioned on top of a product receptacle, and sprayers wherein a propellant
receptacle is positioned within a product receptacle to form inner and outer receptacles.
A particular advantage of such dual receptacle sprayers is that they lend themselves
to the use of less propellant and higher product to propellant ratios at the discharge
outlet, very desirable features in view of the expense and environmental concerns
relating to commonly used aerosol propellants such as those containing volatile organic
compounds. In dual receptacle sprayers of the piggyback or inner-outer type, an aerosol
valve is mounted at the top of the propellant receptacle and contains a valve stem
through which both product and propellant can pass into an actuator mounted on the
top of the valve stem. A conduit for the product is positioned below the valve and
passes in sealed fashion through the inside and out of the bottom of the propellant
receptacle down into the product receptacle. A Venturi constriction is present in
the actuator, and when the aerosol valve is actuated, the flow of propellant from
the propellant receptacle through the valve and through the Venturi constriction draws
product from the product receptacle through the conduit and valve into the actuator
to mix with the propellant and be dispensed from the actuator.
[0003] For a satisfactory dual receptacle sprayer having inner propellant and outer product
receptacles, there are a large number of criteria that need to be addressed and satisfied.
First of all, the sprayer needs to be safe from rupture of the propellant receptacle
causing injury to the user. Second, the sprayer needs to be safe from propellant inadvertently
entering the product receptacle upon actuator clogging or due to poorly designed propellant
receptacle placement, to cause rupture of the product receptacle and injury to the
user. Third, propellant should not in any event inadvertently enter the product receptacle
upon actuator clogging or because of poorly designed propellant chamber and valve
placement, since the inadvertent adding of propellant to the product will change the
predetermined product to propellant ratio to be dispensed when the sprayer is later
actuated (for example, after the clogged actuator is cleaned). Fourth, the sprayer
packaging should be economical to manufacture and aesthetically pleasing in appearance
to the user, both in shape, feel and graphics of the overall package. Fifth, the product
in the product receptacle should not be open to the atmosphere so that when the sprayer
is not in use, the product in the product receptacle cannot evaporate, be contaminated,
or be released from the sprayer by dropping the sprayer or squeezing the outer product
receptacle. Sixth, the design of Venturi constriction in the actuator should provide
high product to propellant ratios for the aforementioned reasons. Seventh, the product
receptacle advantageously may be refillable, and the propellant receptacle and valve
can be replaceable for interchangeability and reuse in dispensing various products.
The closure of the propellant receptacle and its seating within the product receptacle
should be simple to manufacture and designed to prevent any blow-off of the closure
by the propellant. Eighth, the propellant receptacle and valve structure advantageously
may be designed to permit high speed pressure filling of the propellant receptacle
through valve structure which must also be adapted for product flow during spraying,
while excluding propellant flow from entering the product flow path of the valve structure
during said pressure filling. Pressure filing of volatile organic propellant components
is advantageous vis-a-vis under the mounting cup filling for environmental and economic
reasons, as is well known, and smaller amounts of expensive propellant can be used.
Ninth, the valving structure for both product and propellant flow through the housing
and stem of the valve should be simple in construction and manufacture. Tenth, means
should be provided to maintain atmospheric pressure in the product receptacle as product
is sprayed, so that as the product is drawn out of the product receptacle the product
receptacle will not distort or collapse inwardly because of lowered internal pressure.
At least these criteria are relevant to a commercially satisfactory, economical and
safe sprayer having inner and outer receptacles.
[0004] The prior art to date has at best only partially satisfied the above criteria for
sprayers with inner and outer receptacles. In certain of the prior art, the propellant
receptacle is the outer receptacle so that rupture immediately exposes the user to
injury. Other prior art places the propellant chamber inside the propellant chamber,
but provides no means to prevent propellant, upon clogging of the actuator nozzle
or unsatisfactory valve-propellant receptacle placement, from finding a path into
the product chamber to potentially cause rupture or as a minimum change the ultimate
product to propellant ratios dispensed. Certain other such prior art variously provides
complicated and/or inadequate means to suspend the propellant receptacle within the
product receptacle, which means can be blown off the top of the propellant receptacle
and which allow seepage from the propellant receptacle into the product receptacle
through a valve sealing gasket; complicated designs for the propellant and product
valves; no valve shut-off of the product container when the sprayer is not being used;
inadequate Venturi constructions; and/or no means to pressure fill the propellant
receptacle.
[0005] Representative of the above prior art are
U.S. Patents Nos. 3,289,949;
3,388,838;
3,389,837;
3,401,844;
3,451,596;
3,894,659;
4,441,632;
5,507,420; and
6,092,697.
Summary Of The Invention
[0006] In accordance with claim 1, a dual receptacle aerosol spray dispenser is provided
having a outer flexible product receptacle and an inner propellant receptacle. An
inner substantially rigid receptacle is seated within said outer receptacle for containing
a pressurized propellant out of contact with the product to be dispensed. A closure
closes the top of the inner receptacle and has a valve assembly mounted thereon. Said
valve assembly includes a valve housing, a valve stem extending outwardly of said
closure, primary and secondary valves for controlling flow from said inner and outer
receptacles respectively through the valve stem, and first and second resilient sealing
gaskets for sealing the primary and secondary valves. A conduit forms a product flow
path connected to one end of the valve assembly and extends through the inner receptacle
and beyond for extending into the outer receptacle. The conduit is in sealed relation
with the inner receptacle at the point where it exits the inner receptacle. Said valve
stem defines upwardly extending product and propellant bores open at their upper ends,
one of said bores being in fluid communication with the primary valve and another
of said bores being in fluid communication with the secondary valve. Further a spray
actuator for mounting on the valve stem and overlying the upper ends of said bores
is provided, said spray actuator having a discharge outlet in fluid communication
with said bores. Said spray actuator further has a nozzle insert with a Venturi constriction
whereby propellant passing from the inner receptacle and through the nozzle insert
aspirates product from the outer receptacle resulting in said product and propellant
exiting the spray actuator discharge outlet.
[0007] Upon use of the sprayer, the actuator discharge opening can occasionally clog, which
can lead to a dangerous safety issue if propellant entering the actuator should, because
it cannot exit the clogged discharge opening, pass down the product bore of the stem
past the secondary shut-off valve, down the product conduit and into the outer product
receptacle. A sufficient pressure build-up by this means can cause the outer container
to rupture and potentially injure the user. Even without such a rupture, sufficient
propellant can enter the product receptacle by this means such that, after the clogged
actuator discharge outlet is cleaned, the resulting product and propellant dispensed
on subsequent spraying will have a considerably different product to propellant ratio
then the predetermined desired ratio. This latter result, in addition to the use of
excess propellant, also will effect particle size and spraying pattern of the sprayed
product and thus the effectiveness of the spraying.
[0008] Accordingly, a tertiary valve is provided in the form of a one way valve positioned
downstream of the secondary valve in the path of product flow. Said tertiary valve
opens when the spray actuator is actuated and product is drawn up the conduit from
the outer receptacle. Further, said tertiary valve closes upon clogging of the discharge
outlet causing flow of propellant from the propellant bore into the spray actuator
when actuated, down the product bore, and through the secondary valve, the tertiary
valve closing under the influence of said propellant flow through the secondary valve
to prevent propellant passing into the flexible outer receptacle.
[0009] Other features and advantages of the present invention will be apparent from the
following description and drawings .
Brief Description of The Drawings
[0010]
Fig. 1 is a sectional side view of the spray dispenser of the present invention in
its non-operating state;
Fig. 2 is a sectional side view corresponding to Fig. 1, but with the spray dispenser
of the present invention in its operating state;
Fig. 3 is an enlarged sectional side view of the aerosol valve assembly of the present
invention in its non-operating state;
Fig. 4 is an enlarged sectional side view of the aerosol valve assembly and actuator
of the present invention in its operating state;
Fig. 5 is an enlarged sectional side view of the aerosol valve assembly of the present
invention in its propellant pressure filling state; and,
Fig. 6 is a partial cross-sectional view of the aerosol valve assembly of the present
invention taken along lines A-A of Fig. 5.
Description Of Embodiment
[0011] Figs. 1 and 2 illustrate generally an aerosol spray dispenser 10 having a , flexible
outer receptacle 11 for containing a product 12 to be dispensed. Receptacle 11 may
be molded from a variety of plastics in a variety of shapes, sizes and colors to meet
marketing needs. Various graphics also may be easily applied to the outside of plastic
receptacle 11. Outer receptacle 11 will not contain a pressurized propellant, and
accordingly could be thin walled for economy of manufacture since a substantial wall
thickness is not required to resist propellant deformation or possible rupture. The
products to be dispensed may include household products, insecticides, herbicides,
cosmetic products, paints, etc.
[0012] Seated within outer receptacle 11 is inner receptacle 13 for containing a liquified
propellant 14 having a liquid phase and an overlying gaseous phase. Inner receptacle
13 will be substantially rigid to withstand deformation by the propellant, and may
be made of metal or of plastic. Inner receptacle 13 is closed at its upper end by
closure 15 in the form of an aerosol mounting cup as shown having a central pedestal
portion 16 and a peripheral circumferential channel portion 17 as is well known in
the art. Mounted within pedestal 16 of closure 15 is an aerosol valve assembly 18
hereinafter described in detail. Said valve assembly 18 includes valve stem 19 and
valve housing 20, stem 19 extending upwardly through pedestal portion 16. Mounted
on the top of valve stem 19 is aerosol actuator 21, the details of which are also
described hereinafter. Extending downwardly from valve housing 20 within inner receptacle
13 is product conduit 22, said conduit passing through the bottom of inner receptacle
13 and into outer product receptacle 11.
[0013] Closure 15 seals inner propellant receptacle 13 by peripheral channel portion 17
being clinched about upper circumferential peripheral bead 23 of inner receptacle
13. In turn the clinched bead 23 and channel 17 rest upon circumferential ledge 24
to seat inner receptacle 13 within outer receptacle 11. The outer periphery of outer
receptacle 11 is threaded at the top by threads 25. Cylindrical screw-on plastic cap
26 has a central opening 27 through which actuator 21 and valve stem 19 extend. Cap
26 further has a downwardly extending circular flange 28 which firmly captures the
clinched bead 23 and channel 17 between said flange and ledge 24 when cap 26 is screwed
onto outer plastic receptacle 11.
[0014] Still generally referring to Figs. 1 and 2, Fig. 1 illustrates the spray dispenser
10 in its non-operating state. Fig. 2 on the other hand illustrates spray dispenser
10 in its operating state, the actuator 21 being operated by the user. As will be
seen by the arrows, propellant 14 from inner receptacle 13 enters into aerosol valve
housing 20 and is valved in a manner hereinafter described up valve stem 19 into actuator
21. Actuator 21 contains a nozzle insert 29 (discussed below) which has a Venturi
constriction 30. The flow of propellant 14 out of the Venturi constriction draws product
12 from outer product receptacle 11 up product conduit 22, through tertiary valve
31 (discussed below), continuing up conduit 22 and into aerosol valve housing 20 where
it is valved in a manner hereinafter described up valve stem 19 and into actuator
21. The product 12 and propellant 14 briefly mix in actuator 21, and are dispensed
through the discharge outlet 32 of actuator 21.
[0015] Now referring specifically to Figs. 3 and 4, enlarged views are shown of the aerosol
valve assembly 18 (and including actuator 21 in the case of Fig. 4). Fig. 3 illustrates
the valve assembly 18 in its non-operating stage and Fig. 4 illustrates valve assembly
18 in its operating state. Valve housing 20 is captured by the pedestal 16 of mounting
cup closure 15 being crimped about the housing at 40. Valve housing 20 has side wall
openings 41 through which propellant 14 from inner receptacle 13 enters (see Fig.
2). Product conduit 22 is connected to the lower end of valve housing 20 as shown
to pass product 12 into a different portion of the valve housing 20. In the non-operating
state of Fig. 3, neither product 12 nor propellant 14 can pass from the valve housing
20 into valve stem 19.
[0016] Valve stem 19 includes central product bore 42 and offset propellant bore 43, both
bores being open at their upper ends. A transverse stem orifice 44 passes from propellant
bore 43 through the wall of stem 19 to a circumferential groove 45 in the outer wall,
said orifice being closed in Fig. 3 by circumferential flexible sealing gasket 46
extending into the groove 45 to form a primary valve 70 in the present invention.
Flexible sealing gasket 46 is captured between upward circumferential protrusion 47
at the top of valve housing 20 and the top underside 48 of mounting cup pedestal 16.
In a corresponding fashion, transverse stem orifices 49 pass from product bore 42
through the wall of stem 19 to a circumferential groove 50 in the outer wall, said
orifices 49 being closed in Fig. 3 by circumferential sealing gasket 51 extending
into groove 50 to form a secondary valve 80 in the present invention.
[0017] Fig. 4 illustrates actuator 21 fitted over the top of valve stem 19, actuator 21
containing a nozzle insert 29 with Venturi constriction 30. A particularly advantageous
nozzle insert is disclosed in
U.S. Patent No. 6,036,111 issued March 14, 2000 to Robert Abplanalp, which patent and its entire disclosure are incorporated herein by reference. Attention
is particularly directed to Figs. 5 through 8 and 10 of said patent, and the description
relating to those figures as to the nozzle insert. Actuator 21 with nozzle insert
29 having Venturi constriction 30 establishes a high vacuum in the product channels
of the actuator so as to be particularly efficient in obtaining very high product
to propellant ratios in dual receptacle aerosol spray dispensers.
[0018] When actuator 21 is operated by the user pressing down thereon, valve stem 19 is
depressed against spring 52 positioned between a portion of the valve stem 19 and
a portion of valve housing 20. Flexible rubber sealing gaskets 46 and 51 of the primary
and secondary valves respectively are pressed downwardly at their inner edges by the
grooves 45 and 50 of valve stem 19. Fig. 4 shows by its arrows propellant 14 passing
through the valve housing side wall openings 41 into interior valve housing space
53, into groove 45, through stem transverse orifice 44, up stem propellant bore 43,
and into central channel 54 of nozzle insert 29 in actuator 21. The propellant flow
through Venturi constriction 30 of nozzle insert 29 creates a high vacuum to draw
product 12 from outer receptacle 11 up product conduit 22 into the lower end of valve
housing 20. Said product then passes into groove 50, through stem transverse orifices
49, up central stem product bore 42, and into channels 55 surrounding nozzle insert
29 in actuator 21. The product and propellant are kept separate until they join adjacent
Venturi constriction 30, and are dispensed through discharge outlet 32 of the actuator.
When the actuator 21 is no longer operated by the user, the aerosol spray dispenser
returns to its non-operating state of Figs. 1 and 3.
[0019] When the aerosol spray dispenser of the present invention is in operation, discharge
outlet 32 of the actuator may become clogged by the product being dispensed. When
such occurs, there is a safety issue and also an efficiency of spraying issue that
need to be addressed as previously described. Referring again to Fig. 4, a clogging
of discharge outlet 32 during actuation still leaves propellant flowing up propellant
bore 43 into the actuator 21, and since the propellant cannot exit the discharge outlet
32, it flows through product channels 55 in actuator 21 down stem product bore 42,
through the open secondary valve transverse orifices 49, down product conduit 22 and
toward flexible outer product receptacle 11. It is unacceptable that the propellant
should reach the outer receptacle 11, since thin-walled outer receptacle 11 will deform
and potentially rupture if sufficient propellant 14 is introduced therein, possibly
causing injury. Further, any significant amount of propellant 14 introduced into product
12 will remain there when the user stops operation of the actuator 21 in order to
declog it. Thereafter, upon subsequent operation of the actuator, the dispensed product
will contain the predetermined amount of propellant from propellant bore 43, as well
as the misdirected propellant previously introduced to the product receptacle 11 during
the aforedescribed clogging. This of course will interfere with the predetermined
spray characteristics and particle size of the product to be dispensed, resulting
in a less desirable product and dissatisfied users.
[0020] Accordingly, referring back to Fig. 1 and 2, tertiary valve 31 in the form of a one-way
valve is positioned in product conduit 22. Tertiary valve 31 may take the form of
any type of one-way valve, and may be positioned as shown or up in the bottom of valve
housing 20, for example. In any event the tertiary valve 31 should be positioned in
the product flow passage downstream of the secondary valve, and during normal operation
of the spray dispenser the tertiary valve must allow product 12 to flow from inner
receptacle 11 past the tertiary valve 31 up product conduit 22 into the valve housing
20. However, when the aforedescribed clogging arises, the misdirected propellant flowing
down conduit 22 above tertiary valve 31 acts to immediately close tertiary valve 31
and prevent the misdirected propellant from entering outer thin-walled product receptacle
11, thereby avoiding the safety and efficiency problems described above.
[0021] As shown in Figs. 1 and 2, tertiary valve 31 includes valve seat member 57 having
valve seat 58, ball check 59 which presses against valve seat 58 during misdirected
propellant flow, metering channel 60 to control normal product flow to a predetermined
level, and inward protrusions 61 to define the upper limit of movement of the ball
check 59 during normal product flow. Metering channel 60 is closed off by ball check
59 during misdirected propellant flow. Dip tube 62 is fitted to the lower end of valve
seat member 57. Tube 63 is fitted to the lower end of valve housing 20 and to the
upper end of valve seat member 57. The valve seat member 57 is sealingly fitted into
the opening in the bottom of inner receptacle 13, as shown. Product conduit 22 accordingly
includes dip tube 62, valve seat member 57 and tube 63 in the embodiment as shown.
[0022] As an alternative to having metering channel 60 function as the product metering
orifice to control product flow and the particle size of the dispensed product, orifice
20a at the bottom of the valve housing (see Figs. 1 and 4) may be sized to be of smaller
diameter than that of channel 60 in order to function as the product metering orifice.
[0023] During normal operation of the aerosol spray dispenser of the present invention,
it is important that the pressure above fluid product 12 in outer receptacle 11 be
maintained substantially at atmospheric pressure in order to provide for proper product
draw by the Venturi constriction in the actuator and to prevent inward collapsing
of outer flexible receptacle 11. Accordingly, duck bill valve 64 is provided in the
side wall of receptacle 11, said duct bill valve functioning to open to the atmosphere
whenever the pressure in receptacle 11 is reduced by product dispensing.
[0024] Referring now to Figs. 5 and 6, the propellant 14 in the present invention may be
pressure filled into inner receptacle 13 to achieve desired environmental and economic
advantages over under-the-cup filling. In particular, the arrows show in Fig. 5 the
path of propellant flow from a filling head during pressure filling. A conventional
filling head (not shown) sealingly seats on mounting cup 15, depresses valve stem
19, seals off the top of bores 42 and 43, and introduces propellant into the circumferential
space 65 between the periphery of the central opening of the pedestal 16 and valve
stem 19. As valve stem 19 is depressed, the inner edge of flexible gasket 46 is bent
over as shown. Propellant flows around the inner edge, down interior space 53 inside
valve housing 20, and out through the side wall openings 41 of valve housing 20 into
inner propellant receptacle 14. It will be noted that the second flexible gasket 51,
though bent over by the depressed valve stem 19, still blocks any flow of propellant
past gasket 51 into the lower end of valve housing 20 and down into product conduit
22. It will likewise be seen that the propellant flow upon filling depresses and passes
over the top of first flexible gasket 46 and around its outer edge down into a plurality
of passageways 66 provided around the periphery of the upper end of the valve housing
20 for such purpose. These passageways, separated by ribs 67, are shown on the right
side of Fig. 6, it being understood that the gasket 46 is not shown in Fig. 6 in order
to more clearly illustrate the propellant passageways. Said passageways are open top
to bottom and exit into inner receptacle 14. Accordingly, multiple paths of propellant
flow are provided for pressure filing, while preventing any of such flow from entering
into the product flow path of the present invention.
[0025] In summary, the present invention provides an aerosol spray dispenser that meets
the criteria set forth above in the Background Of The Invention for a highly satisfactory
dual receptacle sprayer having inner and outer receptacles. It will be appreciated
by persons skilled in the act that variations and/or modifications may be made in
the present invention within the scope of the appended claims.
1. An aerosol spray dispenser comprising an aerosol system having an outer flexible product
receptacle (11) and an inner propellant receptacle (13), the inner substantially rigid
receptacle (13) being seated within said outer receptacle (11) for containing a pressurized
propellant out of contact with the product to be dispensed;
a closure (15) closing the top of the inner receptacle (13) and having a valve assembly
(18) mounted thereon;
said valve assembly (18) including a valve housing (20), a valve stem (19) extending
outwardly of said closure (15), primary (70) and secondary (80) valves for controlling
flow from said inner and outer receptacles (13, 11) respectively through the valve
stem (19), and first and second resilient sealing gaskets (46, 51) for sealing the
primary (70) and secondary (80) valves;
a conduit (22) forming a product flow path connected to one end of the valve assembly
(18) and extending through the inner receptacle (13) and beyond for extending into
the outer receptacle (11), said conduit (22) being in sealed relation with the inner
receptacle (13) at the point where it exits the inner receptacle (13);
said valve stem (19) defining upwardly extending product and propellant bores (42,
43) open at their upper ends, one of said bores (42, 43) being in fluid communication
with the primary valve (70) and another of said bores (42, 43) being in fluid communication
with the secondary valve (80);
a spray actuator (21) for mounting on the valve stem (19) and overlying the upper
ends of said bores (42, 43), said spray actuator (21) having a discharge outlet (32)
in fluid communication with said bores (42, 43);
said spray actuator (21) having a nozzle insert (29) with a Venturi constriction (30)
whereby propellant passing from the inner receptacle (13) and through the nozzle insert
(29) aspirates product from the outer receptacle (11) resulting in said product and
propellant exiting the spray actuator (21) discharge outlet (32);
wherein the aerosol spray dispenser is characterized by
a tertiary valve (31) in the form of a one way valve positioned downstream of the
secondary valve (80) in the path of product flow, said tertiary valve (31) opening
when the spray actuator (21) is actuated and product is drawn up the conduit (22)
from the outer receptacle (11); and
said tertiary valve (31) closing upon clogging of the discharge outlet (32) causing
flow of propellant from the propellant bore into the spray actuator (21) when actuated,
down the product bore, and through the secondary valve (80), the tertiary valve (31)
closing under the influence of said propellant flow through the secondary valve (80)
to prevent propellant passing into the flexible outer receptacle (11).
1. Aerosolspray-Spender, umfassend ein Aerosolsystem mit einem äußeren flexiblen Produktbehälter
(11) und einem inneren Treibmittelbehälter (13), wobei der innere, im Wesentlichen
steife Behälter (13) in den äußeren Behälter (11) derart eingesetzt ist, dass er das
unter Druck stehende Treibmittel außer Kontakt mit dem abzugebenden Produkt enthält;
einen Verschluss (15), der das obere Ende des inneren Behälters (13) verschließt und
einen darauf angebrachten Ventilaufbau (18) aufweist;
wobei der Ventilaufbau (18) umfasst: ein Ventilgehäuse (20), einen Ventilstamm (19),
der von dem Verschluss (15) nach außen zeigt, ein primäres (70) und ein sekundäres
(80) Ventil zum Regeln des Stroms von dem inneren bzw. dem äußeren Behälter (13, 11)
durch den Ventilstamm (19) sowie eine erste und eine zweite elastische Dichtung (46,
51) zum Abdichten des primären (70) und des sekundären (80) Ventils;
eine Leitung (22), die einen Produktströmungsweg herstellt und die mit einem Ende
des Ventilaufbaus (18) verbunden ist und durch den inneren Behälter (13) und darüber
hinaus verläuft, so dass sie bis in den äußeren Behälter (11) reicht, wobei die Leitung
(22) an dem Punkt, an dem sie aus dem inneren Behälter (13) kommt, eine abgedichtete
Verbindung mit dem inneren Behälter (13) eingeht;
wobei der Ventilstamm (19) nach oben verlaufende Produkt- und Treibmittelbohrungen
(42, 43) definiert, die an ihren oberen Enden offen sind, wobei eine der Bohrungen
(42, 43) sich in Flüssigkeitskommunikation mit dem primären (70) befindet und eine
andere der Bohrungen (42, 43) sich in Flüssigkeitskommunikation mit dem sekundären
Ventil (80) befindet;
einen Sprühauslöser (21), der auf dem Ventilstamm (19) angebracht wird und die oberen
Enden der Bohrungen (42, 43) überdeckt, wobei der Sprühauslöser (21) einen Entladungsauslass
(32) in Flüssigkeitskommunikation mit den Bohrungen (42, 43) aufweist;
wobei der Sprühauslöser (21) einen Düseneinsatz (29) mit einer Venturi-Verengung (30)
aufweist, wodurch Treibmittel, das von dem inneren Behälter (13) und durch den Düseneinsatz
(29) vorbeiströmt, Produkt aus dem äußeren Behälter (11) ansaugt, so dass Produkt
und Treibmittel aus dem Entladungsauslass (32) des Sprühauslösers (21) austreten,
wobei der Aerosolspray-Spender dadurch gekennzeichnet, dass:
ein tertiäres Ventil (31) in Form eines Einwegeventils, das sich stromabwärts des
sekundären Ventils (80) im Produktströmungsweg befindet, wobei das tertiäre Ventil
(31) sich öffnet, wenn der Sprühauslöser (21) betätigt wird und Produkt die Leitung
(22) hinauf von dem äußeren Behälter (11) gesogen wird; und
wobei das tertiäre Ventil (31) sich nach Blockieren des Entladungsauslasses (32) verschließt,
so dass Treibmittel von der Treibmittelbohrung in den Sprühauslöser (21), wenn dieser
betätigt wird, nach unten durch die Produktbohrung und durch das sekundäre Ventil
(80) strömt und das tertiäre Ventil (31) sich unter dem Einfluss des Treibmittelstroms
durch das sekundäre Ventil (80) verschließt, so dass ein Treibmittelstrom in den flexiblen
äußeren Behälter (11) verhindert wird.
1. Pulvérisateur d'aérosol, comprenant un système aérosol avec un conteneur de produit
extérieur flexible (11) et un conteneur de propulseur intérieur (13), le conteneur
intérieur substantiellement rigide (13) étant placé à l'intérieur dudit conteneur
extérieur (11) et contenant un propulseur sous pression n'entrant pas en contact avec
le produit à diffuser ;
un mécanisme de fermeture (15) fermant le haut du conteneur intérieur (13) et comprenant
un ensemble de valve (18) intégré ;
ledit ensemble de valve intégré (18) comprenant un logement de valve (20), une tige
de valve (19) s'étendant vers l'extérieur dudit mécanisme de fermeture (15), des valves
primaire (70) et secondaire (80) servant à contrôler le débit desdits conteneurs intérieur
et extérieur (13, 11) respectivement à travers la tige de la valve (19) et un premier
et un deuxième joints d'étanchéité (46, 51) pour sceller les valves primaire (70)
et secondaire (80) ;
un conduit (22) formant une voie d'acheminement du produit connecté à un bout de l'ensemble
de valve (18) et s'étendant à travers le conteneur intérieur (13) et au-delà pour
atteindre le conteneur extérieur (11), ledit conduit (22) étant scellé par rapport
au conteneur intérieur (13) au point où il sort du conteneur intérieur (13) ;
ladite tige de valve (19) définissant des tubes de produit et de propulseur s'étendant
vers le haut (42, 43) et étant ouverts à leurs extrémités supérieures, le premier
de ces deux tubes (42, 43) étant en communication en terme de fluide avec la valve
primaire (70) et le second de ces deux tubes (42, 43) étant en communication en terme
de fluide avec la valve secondaire (80) ;
un organe d'actionnement du pulvérisateur (21) prévu pour montage sur la tige de la
valve (19) et recouvrant les bouts supérieurs desdits tubes (42, 43), ledit organe
d'actionnement du pulvérisateur (21) comprenant un orifice de décharge (32) en communication
en terme de fluide avec lesdits tubes (42, 43) ;
ledit organe d'actionnement du pulvérisateur (21) comprend un gicleur rapporté (29)
avec un rétrécissement Venturi (30) permettant au propulseur provenant du conteneur
intérieur (13) et passant à travers le gicleur rapporté (29) d'aspirer du produit
placé dans le conteneur extérieur (11), ce qui a pour effet que ledit produit et ledit
propulseur sortent de l'orifice de décharge (32) de l'organe d'actionnement du pulvérisateur
(32) ;
dans lequel le pulvérisateur d'aérosol est caractérisé par le fait que
une valve tertiaire (31) consistant en une valve unidirectionnelle positionnée en
aval de la valve secondaire (80) sur la voie d'acheminement du produit s'ouvre lorsque
l'organe d'actionnement du pulvérisateur (21) est actionné et le produit est attiré
vers le haut du conduit (22) depuis le conteneur extérieur (11) ; et
ladite valve tertiaire (31) se ferme lorsque l'orifice de décharge (32) est obstrué,
ce qui éjecte le propulseur depuis le tube de propulseur jusqu'à l'organe d'actionnement
du pulvérisateur (21) quand celui-ci est actionné, vers le bas du tube de produit
et à travers la valve secondaire (80), la valve tertiaire (31) se fermant sous l'influence
de la poussée dudit propulseur à travers la valve secondaire (80) afin d'empêcher
le propulseur de passer dans le conteneur extérieur flexible (11).